Ji Xu, Liu Yang, Zhang Zhuxi, Cui Jiabao, Fan Yangyang, Qiao Yun
School of Chemistry and Chemical Engineering, Key Laboratory of Green Chemical Media and Reactions, Ministry of Education, Henan Normal University, Xinxiang, Henan, 453007, China.
School of Environment and Chemical Engineering, Shanghai University, Shanghai, 200444, China.
Chemistry. 2024 Jan 16;30(4):e202303319. doi: 10.1002/chem.202303319. Epub 2023 Nov 27.
With the extensive use of fossil fuels, the ever-increasing greenhouse gas of mainly carbon dioxide emissions will result in global climate change. It is of utmost importance to reduce carbon dioxide emissions and its utilization. Li-CO batteries can convert carbon dioxide into electrochemical energy. However, developing efficient catalysts for the decomposition of Li CO as the discharge product represents a challenge in Li-CO batteries. Herein, we demonstrate a carbon foam composite with growing carbon nanotube by using cobalt as the catalyst, showing the ability to enhance the decomposition rate of Li CO , and thus improve the electrochemical performance of Li-CO batteries. Benefiting from its abundant pore structure and catalytic sites, the as-assembled Li-CO battery exhibits a desirable overpotential of 1.67 V after 50 cycles. Moreover, the overpotentials are 1.05 and 2.38 V at current densities of 0.02 and 0.20 mA cm , respectively. These results provide a new avenue for the development of efficient catalysts for Li-CO batteries.
随着化石燃料的广泛使用,以二氧化碳排放为主的温室气体不断增加将导致全球气候变化。减少二氧化碳排放及其利用至关重要。锂-二氧化碳电池可将二氧化碳转化为电化学能。然而,开发用于分解作为放电产物的碳酸锂的高效催化剂是锂-二氧化碳电池面临的一项挑战。在此,我们展示了一种以钴为催化剂生长碳纳米管的碳泡沫复合材料,它具有提高碳酸锂分解速率的能力,从而改善锂-二氧化碳电池的电化学性能。受益于其丰富的孔结构和催化位点,组装后的锂-二氧化碳电池在50次循环后表现出1.67 V的理想过电位。此外,在电流密度为0.02和0.20 mA cm时,过电位分别为1.05和2.38 V。这些结果为锂-二氧化碳电池高效催化剂的开发提供了一条新途径。